Article ID Journal Published Year Pages File Type
251337 Composite Structures 2015 11 Pages PDF
Abstract

•Probabilistic stress variation studies on composite adhesive joints.•Peel and shear stress obtained using digital image correlation.•Deterministic finite element analysis of the joint.•Finite element based Monte Carlo simulation on adhesive joints.•Effect of variation in parameters on maximum stress.

The work presented in this paper involves the stochastic finite element analysis of composite-epoxy adhesive lap joints using Monte Carlo simulation. A set of composite adhesive lap joints were prepared and loaded till failure to obtain their strength. The peel and shear strain in the bond line region at different levels of load were obtained using digital image correlation (DIC). The corresponding stresses were computed assuming a plane strain condition. The finite element model was verified by comparing the numerical and experimental stresses. The stresses exhibited a similar behavior and a good correlation was obtained. Further, the finite element model was used to perform the stochastic analysis using Monte Carlo simulation. The parameters influencing stress distribution were provided as a random input variable and the resulting probabilistic variation of maximum peel and shear stresses were studied. It was found that the adhesive modulus and bond line thickness had significant influence on the maximum stress variation. While the adherend thickness had a major influence, the effect of variation in longitudinal and shear modulus on the stresses was found to be little.

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Physical Sciences and Engineering Engineering Civil and Structural Engineering
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